DocumentCode :
1762673
Title :
Head and Media Challenges for 3 Tb/in ^{boldsymbol {2}} Microwave-Assisted Magnetic Recording
Author :
Mallary, Michael ; Srinivasan, K. ; Bertero, Gerardo ; Wolf, Denis ; Kaiser, Christian ; Chaplin, Michael ; Elliott, Chip ; Pakala, Mahendra ; Qunwen Leng ; Liu, Frank ; Yiming Wang ; Silva, Thomas J. ; Shaw, Justin M. ; Nembach, Hans T.
Author_Institution :
Western Digital Corp., San Jose, CA, USA
Volume :
50
Issue :
7
fYear :
2014
fDate :
41821
Firstpage :
1
Lastpage :
8
Abstract :
A specific design for microwave assisted magnetic recording (MAMR) at about 3 Tb/in2 (0.47 Tb/cm2 or 4.7 Pb/m2) is discussed in detail to highlight the challenges of MAMR and to contrast its requirements with conventional perpendicular magnetic recording (PMR). In particular, it has been determined that MAMR-optimized media should have: higher damping than today´s PMR media upon which ferromagnetic resonance measurements are reported, very low intergranular exchange coupling, and somewhat stronger layer to layer exchange coupling. It was found that with exchange-coupled composite type media (i.e., graded anisotropy with controlled exchange), a spin torque oscillator in the write gap of a wider shielded pole cannot adequately define the written track at high track density. Adequate lateral field gradient, however, is achieved by modifying the pole tip geometry. Other details of this conceptual design are also discussed.
Keywords :
exchange interactions (electron); ferromagnetic resonance; perpendicular magnetic recording; MAMR-optimized media; PMR media; conventional perpendicular magnetic recording; exchange-coupled composite type media; ferromagnetic resonance measurements; high damping; high track density; lateral field gradient; layer exchange coupling; low intergranular exchange coupling; microwave-assisted magnetic recording; pole tip geometry; spin torque oscillator; wide shielded pole; write gap; written track; Couplings; Damping; Frequency measurement; Jitter; Magnetic resonance; Nonhomogeneous media; Damping; field generating layer; microwave-assisted magnetic recording (MAMR); spin torque oscillator (STO);
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2014.2305693
Filename :
6737277
Link To Document :
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